1 Answer

Yousuf Sultan · Answer 1 · 2023-03-07T02:26:52+0000

(a)

Given data

*The given charge is

$q=6.0\text{ pc = 6.0}*10^(-12)\text{ C}$

*The given potential difference is V = 1.25 V

The formula for the capacitance is given as

Substitute the known values in the above expression as

$\begin{gathered} C=(6.0*10^(-12))/(1.25) \\ =4.8*10^(-12)\text{ V} \end{gathered}$

Hence, the capacitance is

$C=4.8*10^(-12)\text{ V}$

(b)

Given data

*The given battery voltage is V = 1.50 V

*The given capacitance is

$C=200\text{ nF = 200}*10^(-9)\text{ F}$

The expression for the electrical potential energy is given as

Substitute the known values in the above expression as

$\begin{gathered} U_p=(1)/(2)(200*10^(-9))(1.50)^2 \\ =2.25*10^(-7)\text{ J} \end{gathered}$

Hence, the electrical potential energy is

$U_p=2.25*10^(-7)\text{ J}$

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